том 147 издание 3-4 страницы 275-286

Unsupported transition metal sulfide catalysts: 100 years of science and application

Тип публикацииJournal Article
Дата публикации2009-10-01
SCImago Q1
WOS Q2
БС1
SJR0.962
CiteScore10.7
Impact factor5.1
ISSN09205861, 18734308
General Chemistry
Catalysis
Краткое описание
For more than 100 years the transition metal sulfides (TMS) have been mainstays of hydro-processing fuels and upgrading bitumen and coal. Every refinery in the world uses them everyday to remove sulfur and other pollutants from transportation liquid fuels. As environmental regulations increase the need for improved active and selective TMS will continue to grow. This need can only be met through increased understanding and research on the next generation of TMS catalysts. In this report we outline the growth in fundamental studies of structure/function in the TMS and suggest are where improved understanding is needed. An understanding of the fundamental properties that lead to both the activity of the simple binary sulfides and the mechanism by which two metals (Co + Mo) acted together to enhance activity (promotion) has been developed. Initial efforts focused on supported commercial catalysts with limited success. In the early 1980s the periodic trends of TMS catalysts on unsupported catalysts were discovered and these results formed the foundation for further basic understanding of the key properties that led to catalytic activity. These results have been extended over the years to include supported catalysts and many petroleum based substrates. Progress has been made by combining synthetic, experimental and theoretical techniques. Theoretical studies support the fact that the d electrons in the frontier orbitals of the catalysts were key in determining catalysis at the surface. The triumph of this approach was that it unified the promoted TMS systems with the binary TMS and provided a common rational for the activity of both. Constant progress since then has been achieved through the application of density functional theory (DFT) narrowing the gap between instinct and a formal description of catalyst structure/function made by combining synthetic, experimental and theoretical techniques. Theoretical studies support the fact that the d electrons in the frontier orbitals of the catalysts were key in determining catalysis at the surface. The triumph of this approach was that it unified the promoted TMS systems with the binary TMS and provided a common rational for the activity of both. Constant progress since then has been achieved through the application of DFT narrowing the gap between instinct and a formal description of catalyst structure/function. It is crucial to remember that for real understanding to develop we must study the catalytically stabilized materials and not materials that are changing under catalytic conditions. In the case of the TMS this means that we must study materials like MoS 2− x C x and RuS 2− x C x . It has been demonstrated that “surface carbides” are the catalytically stabilized state under hydro-treating conditions. The original relation between the d electrons and later DFT calculations all point to the importance of these electrons in the catalytic reaction. However, more work is needed to define the relation between these electrons and the stabilized carbide surfaces before detailed active site structures can be developed with confidence. In addition the presence of Co metal in active hydro-processing catalysts stabilized for four years in a commercial reactor, calls in to question current theories of the structure of promoted catalysts.
Для доступа к списку цитирований публикации необходимо авторизоваться.
Для доступа к списку профилей, цитирующих публикацию, необходимо авторизоваться.

Топ-30

Журналы

2
4
6
8
10
12
14
16
Journal of Catalysis
15 публикаций, 6.85%
Catalysis Today
12 публикаций, 5.48%
ACS Catalysis
8 публикаций, 3.65%
Fuel
7 публикаций, 3.2%
Applied Catalysis A: General
7 публикаций, 3.2%
Applied Catalysis B: Environmental
6 публикаций, 2.74%
Energy & Fuels
6 публикаций, 2.74%
Journal of Physical Chemistry C
5 публикаций, 2.28%
Catalysis Letters
4 публикации, 1.83%
Inorganica Chimica Acta
4 публикации, 1.83%
Chemical Engineering Journal
4 публикации, 1.83%
ChemCatChem
4 публикации, 1.83%
Journal of Physical Chemistry A
4 публикации, 1.83%
Industrial & Engineering Chemistry Research
4 публикации, 1.83%
Catalysts
3 публикации, 1.37%
Materials Letters
3 публикации, 1.37%
RSC Advances
3 публикации, 1.37%
MRS Communications
2 публикации, 0.91%
Scientific Reports
2 публикации, 0.91%
Journal of Environmental Chemical Engineering
2 публикации, 0.91%
MRS Advances
2 публикации, 0.91%
Materials Today Communications
2 публикации, 0.91%
Journal of Energy Chemistry
2 публикации, 0.91%
Journal of Industrial and Engineering Chemistry
2 публикации, 0.91%
Journal of Alloys and Compounds
2 публикации, 0.91%
Inorganic Chemistry
2 публикации, 0.91%
Journal of the American Chemical Society
2 публикации, 0.91%
Journal of Physical Chemistry Letters
2 публикации, 0.91%
ACS Applied Nano Materials
2 публикации, 0.91%
2
4
6
8
10
12
14
16

Издатели

10
20
30
40
50
60
70
80
90
100
Elsevier
94 публикации, 42.92%
American Chemical Society (ACS)
44 публикации, 20.09%
Springer Nature
20 публикаций, 9.13%
Royal Society of Chemistry (RSC)
14 публикаций, 6.39%
Wiley
12 публикаций, 5.48%
MDPI
6 публикаций, 2.74%
AIP Publishing
4 публикации, 1.83%
Taylor & Francis
3 публикации, 1.37%
Pleiades Publishing
2 публикации, 0.91%
IOP Publishing
2 публикации, 0.91%
American Physical Society (APS)
1 публикация, 0.46%
International Union of Crystallography (IUCr)
1 публикация, 0.46%
The Electrochemical Society
1 публикация, 0.46%
Cambridge University Press
1 публикация, 0.46%
Korean Society of Industrial Engineering Chemistry
1 публикация, 0.46%
Cellule MathDoc/Centre Mersenne
1 публикация, 0.46%
Oxford University Press
1 публикация, 0.46%
De Gruyter Brill
1 публикация, 0.46%
American Institute of Aeronautics and Astronautics (AIAA)
1 публикация, 0.46%
Hans Publishers
1 публикация, 0.46%
IntechOpen
1 публикация, 0.46%
Autonomous Non-profit Organization Editorial Board of the journal Uspekhi Khimii
1 публикация, 0.46%
10
20
30
40
50
60
70
80
90
100
  • Мы не учитываем публикации, у которых нет DOI.
  • Статистика публикаций обновляется еженедельно.

Вы ученый?

Создайте профиль, чтобы получать персональные рекомендации коллег, конференций и новых статей.
 Войти с ORCID
Метрики
219
Поделиться
Цитировать
ГОСТ |
Цитировать
Chianelli R. R., Berhault G., Torres B. Unsupported transition metal sulfide catalysts: 100 years of science and application // Catalysis Today. 2009. Vol. 147. No. 3-4. pp. 275-286.
ГОСТ со всеми авторами (до 50) Скопировать
Chianelli R. R., Berhault G., Torres B. Unsupported transition metal sulfide catalysts: 100 years of science and application // Catalysis Today. 2009. Vol. 147. No. 3-4. pp. 275-286.
RIS |
Цитировать
TY - JOUR
DO - 10.1016/j.cattod.2008.09.041
UR - https://doi.org/10.1016/j.cattod.2008.09.041
TI - Unsupported transition metal sulfide catalysts: 100 years of science and application
T2 - Catalysis Today
AU - Chianelli, Russell R.
AU - Berhault, Gilles
AU - Torres, Brenda
PY - 2009
DA - 2009/10/01
PB - Elsevier
SP - 275-286
IS - 3-4
VL - 147
SN - 0920-5861
SN - 1873-4308
ER -
BibTex |
Цитировать
BibTex (до 50 авторов) Скопировать
@article{2009_Chianelli,
author = {Russell R. Chianelli and Gilles Berhault and Brenda Torres},
title = {Unsupported transition metal sulfide catalysts: 100 years of science and application},
journal = {Catalysis Today},
year = {2009},
volume = {147},
publisher = {Elsevier},
month = {oct},
url = {https://doi.org/10.1016/j.cattod.2008.09.041},
number = {3-4},
pages = {275--286},
doi = {10.1016/j.cattod.2008.09.041}
}
MLA
Цитировать
Chianelli, Russell R., et al. “Unsupported transition metal sulfide catalysts: 100 years of science and application.” Catalysis Today, vol. 147, no. 3-4, Oct. 2009, pp. 275-286. https://doi.org/10.1016/j.cattod.2008.09.041.
Ошибка в публикации?